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Target tissues for relaxin identified in vitro with 125I-labelled porcine relaxin.

Various tissues from the mouse, rat and guinea-pig were used to examine the binding of a biologically active, esterified and 125I-labelled porcine relaxin. Binding to mouse symphysial homogenates was time- and temperature-dependent. Other peptide hormones did not complete with relaxin for binding. Mouse uterine tissue displayed similar binding characteristics. Fractionated mammary tissue from 15- and 20-day-pregnant rats exhibited significant relaxin binding activity, as did homogenates of the guinea-pig public symphysis and cervix. Under the conditions used, no relaxin receptors were noted in the liver, spleen or heart from any of the species investigated.

Animals

Production of antisera against electrophoretically separated relaxin and immunofluorescent localization of relaxin in the porcine corpus luteum.

Antisera to porcine relaxin were produced in rabbits injected with different fractions that had been separated by polyacrylamide gel electrophoresis (PAGE). Analyses by agar double immunodiffusion demonstrated that the different fractions of relaxin separated by PAGE have similar antigenic sites and the individual fractions are indistinguishable from one another by this procedure. Antiserum to porcine relaxin inhibited the interpubic ligament forming ability of the hormone in vivo. Indrict fluorescent antibody studies demonstrated that the hormone was localized only in the corpus luteum of the pregnant sow ovary. Large ovoid or polyhedral cells, assumed to be granulosa lutein cells, exhibited the heaviest fluorescence.

Animals

In vitro analysis of antisera to relaxin.

This article describes the development of an in vitro assay to quantitate the ability of antisera to inhibit the biological action of the pregnancy hormone, relaxin. The procedure employed a modification of the in vitro assay for the ability of relaxin to inhibit spontaneous uterine contractions as initially described by Kroc et al. (1959). Several antisera were tested that showed inhibition of relaxin activity. Tests of cross-reactivity demonstrated that antiserum produced against porcine relaxin effectively inhibited the activity in relaxin preparations from cows and rabbits but was much less effective in inhibiting the activity in rat relaxin preparations. Agar double-immunodiffusion studies supported the cross-reactivity studies in that cow and rabbit relaxin preparations gave reactions of identity with the porcine relaxin while the rat relaxin preparation did not produce a precipitin line with the anti-porcine relaxin antiserum.

Animals

Specificity of radioimmunoassays for relaxin.

The specificities of two radioimmunoassays (RIA) for relaxin, based upon crude porcine relaxin (NIH-R-P1; RIA I) and a highly purified porcine relaxin (RIA II) have been studied concurrently using purified hormones and plasma samples. A labelled fraction, selected from radio-iodinated NIH-R-P1 and used in that RIA, was also bound to antiserum raised to the highly purified relaxin. Hence a third RIA was possible in which both the crude and the purified relaxins inhibited in the ng/ml range. Porcine insulin and the connecting peptide of porcine proinsulin did not inhibit any of the assay systems whereas porcine proinsulin did inhibit in each assay at the microgram/ml range. Concurrent measurements by assays I and II have been made in sheep plasma obtained during both delivery of the lamb and suckling. The peak values obtained by assays I and II are 3 and 6 min out of phase during suckling and delivery respectively; the NIH-R-P1 relaxin immunoactivity appearing first. The plasma inhibition curves of both appear to be the sum of individual contributions from relaxin and relaxin-like peptides, such as prorelaxin and its fragments, as seen by different antisera. Both assays, however, give qualitatively similar indices of relaxin immunoactivity. The RIA developed for the more purified peptide would be expected to yield a better quantitative estimate of relaxin secretion but this, like specificity, cannot be shown absolutely.

Animals

Development of a homologous radioimmunoassay for rat relaxin.

Highly purified rat relaxin has been radioiodinated to specific activities of approximately 100 micro Ci/microgram with the Bolton and Hunter reagent [N-succinimidyl 3-(4-hydroxy-5-[125I]iodophenyl) propionate]. A rabbit antirat relaxin serum, applicable in a final dilution of 1:100,000, was developed in a rabbit using unconjugated highly purified rat relaxin. A specific and precise double antibody RIA for rat relaxin sufficiently sensitive to routinely measure from 32--2000 pg rat relaxin was developed. Using this RIA, relaxin immunoactivity levels in extracts of pregnant rat ovaries were found to rise from 0.8 microgram/geq ovarian fresh tissue on day 8 of pregnancy to 723 microgram/geq ovarian fresh tissue on day 20 of pregnancy and then to drop precipitously to 6 microgram/geq ovarian fresh tissue on day 1 of lactation. Consistent with the occurrence and relative levels of relaxin in the ovarian extracts, levels of relaxin in pregnant rat serum were less than 2 ng/ml on day 10 of pregnancy, approximately 150 ng/ml on days 20 and 22 of pregnancy, and 12 ng/ml on day 2 of lactation.

Animals

Relaxin-2: Shaping the Proteomic Landscape of Skeletal Muscle Physiology, Glucose Trafficking, and Mitochondrial Function in Rat.

Relaxin-2 is a hormone with robust beneficial effects on the heart and blood vessels and potential as a therapy for cardiovascular (CV) disease. Considering the interorgan communication between skeletal muscle and heart, and the relation between muscle quality/composition and CV events, we hypothesize that relaxin-2 may regulate skeletal muscle physiology and metabolism. We aim to evaluate the impact of relaxin-2 on the proteome of skeletal muscle from healthy Sprague-Dawley rats. Animals were treated with 0.4 mg/kg/day of serelaxin (recombinant form of human relaxin-2) or vehicle (PBS) for 2 weeks employing subcutaneous osmotic minipumps. Skeletal muscle protein identification and quantification were performed by LC-MS/MS using a Data-Independent Acquisition (DIA)-Sequential Window Acquisition of All Theoretical Fragment Ion Spectra (SWATH) method. SWATH/MS quantitative analysis identified that relaxin-2 significantly decreased 95 proteins and significantly increased 32 proteins in rat skeletal muscle when compared to control rats. From these, 34 proteins were associated with muscle function, myogenesis, muscle differentiation and/or regeneration, 20 are mitochondrial proteins (six from the complexes of the electron transport chain), and 10 proteins participate in glucose metabolism. Qualitative data-dependent workflow analysis identified 35 proteins exclusive to the skeletal muscle of the relaxin-2-treated group: eight proteins related to processes of skeletal muscle function (size, ion homeostasis or organization of caveolae structures and cytoskeleton) and myogenesis, and two proteins involved in muscle differentiation. Our work highlighted for the first time the role of relaxin-2 in crucial processes of muscle physiology and energetic metabolism, which could influence several processes involved in myopathy and CV.

Animals

Relaxin-dependent adenosine 6',5'-monophosphate concentration changes in the mouse pubic symphysis.

The amount of cAMP in the pubic symphyses of estrogen-primed mice increases after injection of the hormone relaxin. This relaxin-induced increase in symphyseal cAMP was observed in immature, mature, and ovariectomized mature mice and could be prevented by prior ip injection of rabbit antibodies to porcine relaxin or by treatment of relaxin with dithiothreitol. The highest level of cAMP was measured 30 min after relaxin injection; the level of measurable cMAP then diminished rapidly. Estrogen-priming of the mice was not a prerequisite for a relaxin-induced response to occur. Relaxin administration did not increase the level of cAMP in a non-target tissue such as liver, nor could an increase in cAMP in the pubic symphysis be elicited by injection of insulin, a protein of similar size and structure, or glucagon, a known stimulator of liver cAMP levels.

Animals

Relaxin inhibits spontaneous and prostaglandin-driven myometrial activity in anaesthetized rats.

Porcine relaxin (250 guinea-pig units/mg) infused intravenously into anaesthetized rats at 20 micrograms/h reversibly abolished spontaneous intra-uterine pressure cycles yet left the myometrium responsive to oxytocin in doses of 4--8 mu. The inhibition was found to be primarily of the frequency, rather than of the amplitude, of pressure cycles. Relaxin (5 or 10 micrograms) was capable of completely suppressing uterine activity driven by prostaglandin F2 alpha infusion in oestrogen-treated ovariectomized rats. Whereas the beta-adrenergic blocker, propranolol, had no effect on relaxin-induced inhibition, phentolamine, an alpha-blocker, significantly delayed the relaxin effect. It is unlikely, however, that relaxin operates through an alpha-inhibitory receptor. The results show that relaxin acts primarily as a frequency modulator and is capable of antagonizing an exogenous myometrial stimulant.

Animals

Purification and characterization of rat relaxin.

Two highly purified forms of relaxin, designated CM1 and CM2, were obtained from rat ovaries collected on day 20 of gestation. The isolation procedure consisted of aqueous extraction, followed by fractionation with Sephadex G-50 and ion exchange chromatography. The yields of CM1 and CM2 were approximately 140 microgram/geq ovarian fresh tissue. No difference in biological potency between CM1 and CM2 was found when they were bioassayed with mouse pubic symphysis bioassays. Physicochemical analyses indicated that CM1 and CM2 were similar but not identical. The molecular weights of CM1 and CM2 were approximately 6000, as determined by ultracentrifugation. Analytical acrylamide disc gel electrophoresis at pH 4.3 demonstrated that CM1 and CM2 had different electrophoretic mobilities. Electrofocusing indicated the isoelectric points of CM1 and CM2 were pH 7.6 and pH 9.4, respectively. The amino acid compositions of CM1 and CM2 were similar but not identical. Slab gel electrophoresis in polyacrylamide gel with sodium dodecyl sulfate showed that both reduced rat relaxin and reduced porcine relaxin migrated farther than their unreduced forms. This observation supports the view that rat relaxin, like porcine relaxin, consists of two chains linked by disulfide bonds.

Amino Acids

Relaxin, a male hormone? Immunocytological localization of a related antigen in the boar testis.

Convincingly demonstrated by immunocytological methods in females of several mammalian species, relaxin has not yet been localized in the male. Immunocytologically, a related antigen was identified in adult normal boar testes using and anti- [NIH P-relaxin/HSA] antiserum free of anti HSA Abs. A strong reaction was observed in interstitial cells, a weaker but very clear one in Sertoli cells. NIH P-relaxin and HC1-acetone extracts of either corpora lutea from pregnant sows or boar testes inhibited the immunofluorescence of the reactive structures in the boar testes as well as in ovaries of pregnant sows. Ethanol-acetone precipitates from boar rete testis or caudal epididymal fluids inhibited the reaction of interstitial and Sertoli cells, but this inhibition in the sow was limited only to degenerative ovarian structures, probably due to an insufficient level of inhibiting antigen in these two seminal fluids, in contrast with the very high concentration of relaxin in luteal cells of pregnant sows. Specific immunofluorescence was observed neither in ectopic testes of adult monocryptorchid boars (contrary to scrotal testes in these same animals) nor in testes of prepuberal pigs. The specificity and meaning of these results are discussed.

Animals

Plasma immunoreactive relaxin levels in pregnant and nonpregnant women.

Immunoreactive relaxin was measured in plasma samples obtained from human volunteers utilizing the RIA procedure of Sherwood et al., as modified by O'Byrne and Steinetz for heterologous plasma samples. Immunoreactive hormone was not detected in samples obtained from men, and only rarely in plasma of nonpregnant women. Immunoreactive relaxin was present as early as the fourth week of pregnancy and was detectable throughout the course of gestation. Immunoreactive relaxin tended to be higher early in pregnancy, and there was no peak just before parturition as occurs in many other species. Our results are at variance with those of Bryant and coworkers, who reported high levels of immunoreactive relaxin in men and nonpregnant as well as pregnant women. The possible reasons for this discrepancy are presented.

Contraceptives, Oral, Combined

Plasma relaxin immunoactivity in the pig at parturition and during nuzzling and suckling.

One sow bled at 30--60-min intervals for 48 h at 5 and 4 days before parturition had mean +/- s.e.m. relaxin levels of 5.0 +/- 0.48 ng/ml and 5.5 +/- 0.44 ng/ml for each 24-h period respectively. This sow and another were bled at frequent intervals during parturition; both showed considerable fluctuations in their relaxin levels but no consistent peaks in relation to each birth. Mean levels during parturition were 10.7 +/- 0.46 ng/ml and 13.4 +/- 0.81 ng/ml respectively, both significantly higher than the levels at 4 and 5 days before birth. Relaxin levels in two lactating sows rose acutely during nursing, showing a 3-fold rise in one animal and an 8-fold rise in the other. Results from a third sow during an extended period of nuzzling and sucking by the piglets showed multiple peaks of relaxin immunoactivity associated with each nuzzling/sucking stimulus.

Animals

Relaxin: an insulin-related growth factor.

Relaxin is an ovarian peptide that is released just prior to parturition to effect changes in the tissues of the birth canal that aid in the delivery of the fetus. Structural studies established that the two constituent polypeptide chains, composed of 22 and 30 amino acids, are joined by two interchain disulfide bonds with an additional third intrachain bridge. As well as the identical pattern of disulfide bonds, relaxin shows an overall 25% identity with insulin. Furthermore, the sequence of relaxin can be incorporated into the known three-dimensional structure of insulin without significant distortion of the main polypeptide chain backbone. The discovery of the insulin-relatedness of relaxin brings to three the number of growth factors that share a common structural gene precursor with insulin. Nerve growth factor and insulin-like growth factor have already been so identified. Inclusion in this hormone family suggests that the mechanism of action may involve internalization as well as complexation with cell surface receptors of target cells.

Amino Acid Sequence

Serial relaxin concentrations in human pregnancy.

Relaxin is a peptide hormone produced by the corpus luteum during pregnancy in human beings. There are no extraluteal sites of production of relaxin in women. By means of a heterologous porcine radioimmunoassay, serial serum relaxin concentrations were determined in three women throughout pregnancy and into labor. All three demonstrated a first-trimester elevation followed by a second-trimester decline; values then remained stable throughout the second and third trimesters and into labor. This further confirms the functional activity of the corpus luteum throughout pregnancy and the value of relaxin as an index of luteal function during gestation.

Corpus Luteum

Relaxin and collagen metabolism.

The influence of the peptide hormone relaxin on collagen metabolism was studied in the symphysis pubis of the mouse. In the tissue the content of water and of acid soluble collagen in relation to total collagen is increased by hormonal treatment. Total collagen calculated in relation to the dry weight is decreased. Collagenase which was also detected in the symphyses of the controls is slightly enhanced. In serum collagen peptidase and collagen peptidase inhibitor as well as cyclic AMP exhibit distinctly increased levels. The effects can be suppressed by administration of relaxin-specific antisera. The data make clear that in the symphysis relaxin activates the collagenolytic system.

Animals

Relaxin Modulates the Genomic Actions and Biological Effects of Estrogen in the Myometrium.

Estradiol (E2) and relaxin (Rln) are steroid and polypeptide hormones, respectively, with important roles in the female reproductive tract, including myometrium. Some actions of Rln, which are mediated by its membrane receptor RXFP1, require or are augmented by E2 signaling through its cognate nuclear steroid receptor, estrogen receptor alpha (ERα). In contrast, other actions of Rln act in opposition to the effects of E2. Here we explored the molecular and genomic mechanisms that underlie the functional interplay between E2 and Rln in the myometrium. We used both ovariectomized female mice and immortalized human myometrial cells expressing wild-type or mutant ERα (hTERT-HM-ERα cells). Our results indicate that Rln modulates the genomic actions and biological effects of estrogen in the myometrium and myometrial cells by reducing phosphorylation of ERα on serine 118 (S118), as well as by reducing the E2-dependent binding of ERα across the genome. These effects were associated with changes in the hormone-regulated transcriptome, including a decrease in the E2-dependent expression of some genes and enhanced expression of others. The inhibitory effects of Rln cotreatment on the E2-dependent phosphorylation of ERα required the nuclear dual-specificity phosphatases DUSP1 and DUSP5. Moreover, the inhibitory effects of Rln were reflected in a concomitant inhibition of the E2-dependent contraction of myometrial cells. Collectively, our results identify a pathway that integrates Rln/RXFP1 and E2/ERα signaling, resulting in a convergence of membrane and nuclear signaling pathways to control genomic and biological outcomes.

Female

Relaxin.

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Amino Acid Sequence